In vivo efficacy of phage cocktails against carbapenem resistance Acinetobacter baumannii in the rat pneumonia model

Author:

Li Shibin1,Wei Bingdong2,Xu Le1,Cong Cong1,Murtaza Bilal1,Wang Lili1,Li Xiaoyu1,Li Jibin3,Xu Mu4,Yin Jiajun5,Xu Yongping14ORCID

Affiliation:

1. School of Bioengineering, Dalian University of Technology, Dalian, China

2. Institute of Animal Nutrition and Feed Science, Jilin Academy of Agricultural Sciences, Gongzhuling, China

3. R&D Centre, Liaoning Innovation Center for Phage Application Professional Technology, Dalian, China

4. R&D Department, Dalian SEM Bio-Engineering Technology Co. Ltd., Dalian, China

5. Department of General Surgery, Affiliated Zhongshan Hospital of Dalian University, Dalian, Liaoning, China

Abstract

ABSTRACT Acinetobacter baumannii , an opportunistic pathogen, poses a significant threat in intensive care units, leading to severe nosocomial infections. The rise of multi-drug-resistant strains, particularly carbapenem-resistant A. baumannii , has created formidable challenges for effective treatment. Given the prolonged development cycle and high costs associated with antibiotics, phages have garnered clinical attention as an alternative for combating infections caused by drug-resistant bacteria. However, the utilization of phage therapy encounters notable challenges, including the narrow host spectrum, where each phage targets a limited subset of bacteria, increasing the risk of phage resistance development. Additionally, uncertainties in immune system dynamics during treatment hinder tailoring symptomatic interventions based on patient-specific states. In this study, we isolated two A. baumannii phages from wastewater and conducted a comprehensive assessment of their potential applications. This evaluation included sequencing analysis, genome classification, pH and temperature stability assessments, and in vitro bacterial inhibition assays. Further investigations involved analyzing histological and cytokine alterations in rats undergoing phage cocktail treatment for pneumonia. The therapeutic efficacy of the phages was validated, and transcriptomic studies of rat lung tissue during phage treatment revealed crucial changes in the immune system. The findings from our study underscore the potential of phages for future development as a treatment strategy and offer compelling evidence regarding immune system dynamics throughout the treatment process. IMPORTANCE Due to the growing problem of multi-drug-resistant bacteria, the use of phages is being considered as an alternative to antibiotics, and the genetic safety and application stability of phages determine the potential of phage application. The absence of drug resistance genes and virulence genes in the phage genome can ensure the safety of phage application, and the fact that phage can remain active in a wide range of temperatures and pH is also necessary for application. In addition, the effect evaluation of preclinical studies is especially important for clinical application. By simulating the immune response situation during the treatment process through mammalian models, the changes in animal immunity can be observed, and the effect of phage therapy can be further evaluated. Our study provides compelling evidence that phages hold promise for further development as therapeutic agents for Acinetobacter baumannii infections.

Funder

Science and Technology Research Project of Liaoning Province

People's Government of Dalian Municipality

Dalian Key R&D Program

Publisher

American Society for Microbiology

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